Large-Scale Synthesis of Multifunctional Single-Phase Co 2 C Nanomaterials
Achieving scalable synthesis of nanoscale transition-metal carbides (TMCs), regarded as substitutes for platinum-group noble metals, remains an ongoing challenge. Herein, a 100-g scale synthesis of single-phased cobalt carbide (Co C) through carburization of Co-based Prussian Blue Analog (Co-PBA) is...
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Veröffentlicht in: | Advanced science 2023-07, Vol.10 (19), p.e2301073 |
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Hauptverfasser: | , , , , , , , , , |
Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | Achieving scalable synthesis of nanoscale transition-metal carbides (TMCs), regarded as substitutes for platinum-group noble metals, remains an ongoing challenge. Herein, a 100-g scale synthesis of single-phased cobalt carbide (Co
C) through carburization of Co-based Prussian Blue Analog (Co-PBA) is reported in CO
/H
atmosphere under mild conditions (230 °C, ambient pressure). Textural property investigations indicate a successful preparation of orthorhombic-phased Co
C nanomaterials with Pt-group-like electronic properties. As a demonstration, Co
C achieves landmark photo-assisted thermal catalytic CO
conversion rates with photo-switched product selectivity, which far exceeds the representative Pt-group-metal-based catalysts. This impressive result is attributed to the excellent activation of reactants, colorific light absorption, and photo-to-thermal conversion capacities. In addition to CO
hydrogenation, the versatile Co
C materials show huge prospects in antibacterial therapy, interfacial water evaporation, electrochemical hydrogen evolution reaction, and battery technologies. This study paves the way toward unlocking the potential of multi-functional Co
C nanomaterials. |
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ISSN: | 2198-3844 2198-3844 |
DOI: | 10.1002/advs.202301073 |